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Search Results (413)

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16 pages, 3476 KB  
Article
Cytogenetic Characterization of the Yak (Bos grunniens) Prometaphase Chromosomes and Comparison with Cattle (Bos taurus)
by Alfredo Pauciullo, Davide Nicodemo, Neyrouz Letaief, Halina Černohorská, Svatava Kubičková, Miluše Vozdová, Pietro Parma, Leopoldo Iannuzzi and Gianfranco Cosenza
Genes 2026, 17(8), 943; https://doi.org/10.3390/genes17080943 - 13 Aug 2026
Viewed by 211
Abstract
Background/Objectives: The domestic yak (Bos grunniens) is a livestock species of major relevance in high-altitude environments and an important model for studying adaptation and reproductive isolation within Bovini. Despite its close phylogenetic relationship with cattle (Bos taurus), yak [...] Read more.
Background/Objectives: The domestic yak (Bos grunniens) is a livestock species of major relevance in high-altitude environments and an important model for studying adaptation and reproductive isolation within Bovini. Despite its close phylogenetic relationship with cattle (Bos taurus), yak × cattle hybrids show a marked sex-biased fertility pattern, with fertile females and generally sterile F1 males, suggesting that subtle chromosomal or genomic differences may underlie post-zygotic reproductive barriers. In this study, we performed a cytogenetic characterization of eight adult yak bulls imported and reared in Central Italy using conventional and molecular cytogenetic approaches. Results: GTG-, RBG-, RBA- and CBA-banding confirmed the yak diploid number as 2n = 60 and the fundamental number as NF = 62, with banding patterns highly comparable to the standardized cattle karyotype. CBA-banding showed an X chromosome lacking evident constitutive heterochromatin and a Y chromosome with distal C-positive blocks. Chromosome instability was low, with 3.75% abnormal metaphases, mainly represented by chromatid and iso-chromatid breaks, while the mean sister chromatid exchange (SCE) rate was 5.19 ± 2.14 per cell. Sequential Ag-NOR/RBA staining localized nucleolar organizer regions (NORs) at the telomeres of autosomes 2, 3, 4, 11 and 25, as in cattle. Zoo-FISH using bovine chromosome paints for X, Y, 5 and 15 showed complete hybridization to the corresponding yak chromosomes, and BAC-FISH mapped the Y-linked ZFY and SRY genes to positions homologous to those reported in cattle. A comparative bioinformatics analysis of available yak genome assemblies confirmed the overall genome-wide correspondence with cattle, while revealing chromosome orientation issues and small local inconsistencies that may be relevant for comparative mapping and probe design. Conclusions: Overall, at the resolution tested, these findings support broad macrostructural conservation of yak and cattle karyotypes and provide cytogenetic reference data for yak populations reared outside of their traditional range. The persistence of F1 male sterility despite this large-scale chromosomal conservation suggests that fine-scale sex chromosome differences, particularly involving pseudoautosomal regions, recombination boundaries, or heterochromatin organization, may deserve targeted investigation. Full article
(This article belongs to the Special Issue Livestock Germplasm Resources, Genetics, and Breeding)
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11 pages, 229 KB  
Article
Effects of Intraovarian Platelet-Rich Plasma on Ovarian Reserve Markers, Oocyte Development, and Pregnancy Outcomes in Women with Diminished Ovarian Reserve: An Uncontrolled Retrospective Before–After Study
by Hüseyin Kayaalp, Hakan Çoksuer, Sertaç Ayçiçek, Abdurrahman Açıkgöz, Seyhmus Tunc, Kevser Arkan, Hüseyin Altas and Serap Mutlu Özcelik Otcu
J. Clin. Med. 2026, 15(14), 5674; https://doi.org/10.3390/jcm15145674 - 20 Jul 2026
Viewed by 308
Abstract
Background: The aim of this study was to investigate the impact of intraovarian platelet-rich plasma (PRP) treatment on ovarian reserve markers, hormonal profiles, oocyte yield, fertilization potential, and pregnancy outcomes in infertile women with diminished ovarian reserve. Methods: This retrospective single-center [...] Read more.
Background: The aim of this study was to investigate the impact of intraovarian platelet-rich plasma (PRP) treatment on ovarian reserve markers, hormonal profiles, oocyte yield, fertilization potential, and pregnancy outcomes in infertile women with diminished ovarian reserve. Methods: This retrospective single-center study was conducted at a tertiary referral center between January 2021 and December 2024 in the Department of Obstetrics and Gynecology, IVF Clinic, Private Diyarlife Hospital, Diyarbakır, Turkey. A total of 78 infertile women with diminished ovarian reserve (DOR) were included. DOR was defined in the present study as an AMH level < 1.1 ng/mL and/or an antral follicle count (AFC) < 5 follicles. Pre-PRP and post-PRP measurements were compared in the same patients. Hormonal and clinical parameters, including prolactin, thyroid-stimulating hormone (TSH), follicle-stimulating hormone (FSH), anti-Müllerian hormone (AMH), estradiol, endometrial thickness, gonadotropin dosage, antral follicle count (AFC), mature metaphase II (MII) oocyte count, and two-pronuclear (2PN) zygote count, were evaluated before and after PRP treatment. Results: Significant increases were observed in AMH and prolactin levels, whereas FSH levels significantly decreased following PRP treatment (all p < 0.001). Post-PRP AFC, MII oocyte count, and 2PN zygote count were significantly higher than pre-PRP values (all p < 0.001). A total of 21 pregnancies (26.9%) were achieved, including 17 clinical pregnancies (81.0% of pregnancies; 21.8% of all patients), 4 biochemical pregnancies (19.0% of pregnancies; 5.1% of all patients), 11 miscarriages (52.4% of pregnancies; 14.1% of all patients), and 6 live births (28.6% of pregnancies; 7.7% of all patients). Significant positive correlations were identified between post-PRP AFC and MII oocyte count (r = 0.803, p < 0.001), post-PRP AFC and 2PN zygote count (r = 0.624, p < 0.001), and MII oocyte count and 2PN zygote count (r = 0.728, p < 0.001). Conclusions: Intraovarian PRP administration was associated with improvements in ovarian reserve markers, oocyte maturation, and fertilization-related outcomes in women with DOR. Significant increases in AFC, MII oocyte count, and 2PN zygote count were observed after PRP treatment. However, these improvements in ovarian reserve markers were not associated with significant differences between women who achieved pregnancy and those who did not. Because of the retrospective design and the absence of a control group, these findings should be interpreted as associations rather than evidence of a causal treatment effect. Although clinical pregnancies and live births were observed during follow-up, larger, multicenter randomized controlled trials are required to confirm these findings and to further evaluate the effect of PRP on reproductive outcomes. Full article
(This article belongs to the Section Obstetrics & Gynecology)
14 pages, 2628 KB  
Article
Optimization of Somatic Embryogenesis and Plant Regeneration in Areca Palm (Areca catechu L.)
by Qikai Zhang, Qiongxiang Li, Yu Li, Chao Ouyang, Jixin Zou and Dongdong Li
Plants 2026, 15(14), 2151; https://doi.org/10.3390/plants15142151 - 13 Jul 2026
Viewed by 457
Abstract
Somatic embryogenesis (SE)—the reprogramming of somatic cells to follow an embryogenic pathway—remains inefficient in the tropical monocot areca palm (Areca catechu L.) due to poorly understood constraints on cell fate transition. Using single-factor and orthogonal experiments, we investigated how plant growth regulators [...] Read more.
Somatic embryogenesis (SE)—the reprogramming of somatic cells to follow an embryogenic pathway—remains inefficient in the tropical monocot areca palm (Areca catechu L.) due to poorly understood constraints on cell fate transition. Using single-factor and orthogonal experiments, we investigated how plant growth regulators (PGRs), nitrogen source, and carbon supply regulate the acquisition of embryogenic competence. The optimal condition (Y3 medium + 6-BA + TDZ + 30 g/L sucrose) yielded a somatic embryo induction rate of 48.62%, more than six-fold higher than that of the unoptimized control. Cytologically, embryogenic callus consisted of small, densely cytoplasmic cells with large, centrally positioned nuclei with decondensed chromatin (i.e., loosely packed, transcriptionally active chromatin) and minimal vacuolation—hallmarks of meristematic, embryogenic-competent cells—whereas non-embryogenic callus contained large, highly vacuolated irregular cells. Histological tracking revealed that areca somatic embryos faithfully recapitulate the zygotic developmental program, including bipolarity establishment and procambium differentiation. Mechanistically, we show that the 6-BA + TDZ combination likely acts by inducing endogenous auxin synthesis; moderate ammonium supply (Y3 medium, NO3/NH4+ ratio 3.6:1) minimizes browning; and 30 g/L sucrose provides optimal energy supply and osmotic regulation. This optimized SE system establishes a tractable model for studying somatic cell reprogramming in a woody monocot. Full article
(This article belongs to the Section Horticultural Science and Ornamental Plants)
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19 pages, 3273 KB  
Article
Mechanisms and Inheritance of Dormancy in Sunflower (Helianthus annuus L.) Achenes
by Gonzalo Joaquín Arata, Mailén Riveira-Rubin, Diego Batlla and María Verónica Rodríguez
Seeds 2026, 5(4), 38; https://doi.org/10.3390/seeds5040038 - 8 Jul 2026
Viewed by 472
Abstract
In dormant sunflower achenes, several structures—the pericarp, seed coat and embryo—contribute to the repression of germination. Achene dormancy varies widely among cultivated sunflower genotypes, and understanding its transmission to hybrid progeny is important both for hybrid seed production and for clarifying the role [...] Read more.
In dormant sunflower achenes, several structures—the pericarp, seed coat and embryo—contribute to the repression of germination. Achene dormancy varies widely among cultivated sunflower genotypes, and understanding its transmission to hybrid progeny is important both for hybrid seed production and for clarifying the role of these structures. This study examined the inheritance of dormancy in the F1 progeny, with particular emphasis on thermo-inhibition (inhibition of germination at warm temperatures). Reciprocal crosses were performed using three oilseed inbred lines with contrasting dormancy phenotypes. Germination of achenes, seeds, and embryos was tested at 10 and 30 °C at harvest and during postharvest, together with hormonal responses (abscisic acid, ethylene and gibberellins) and measurements of endogenous ABA levels. Results show that maternally inherited, pericarp-imposed thermo-inhibition depends on the dormancy level of the hybrid embryo, which follows a zygotic pattern with incomplete dominance. While embryo sensitivity to ABA related positively with thermo-inhibition, surprisingly, embryonic ABA content was inversely related to dormancy level across genotypes. These findings provide new insight into physiological control of achene dormancy in sunflower and contribute to improved breeding strategies for high-quality hybrid seed. Full article
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12 pages, 465 KB  
Article
Double Electroporation Combined with Zona Pellucida Removal Improves Biallelic Genome Editing Efficiency in Porcine Embryos
by Nanaka Torigoe, Takeshige Otoi, Manita Wittayarat, Oky Setyo Widodo, Theerawat Tharasanit, Kaywalee Chatdarong, Megumi Nagahara, Maki Hirata, Fuminori Tanihara and Zhao Namula
Animals 2026, 16(12), 1919; https://doi.org/10.3390/ani16121919 - 20 Jun 2026
Viewed by 506
Abstract
The CRISPR/Cas9 system has been widely used for gene editing in various species; however, mosaicism remains a significant challenge. This study aimed to improve gene editing efficiency and reduce mosaicism in porcine embryos by exploring double electroporation pre- and post-in vitro fertilization combined [...] Read more.
The CRISPR/Cas9 system has been widely used for gene editing in various species; however, mosaicism remains a significant challenge. This study aimed to improve gene editing efficiency and reduce mosaicism in porcine embryos by exploring double electroporation pre- and post-in vitro fertilization combined with zona pellucida (ZP) removal. We evaluated the effects of these treatments on the development and mutation rates of oocytes/zygotes edited with guide RNAs (gRNAs) targeting GGTA1, CMAH, or B4GALNT2 genes. Double electroporation significantly increased the total and biallelic mutation rates in ZP-intact zygotes but not in ZP-free zygotes edited using GGTA1-targeted gRNAs. All blastocysts from ZP-free zygotes exhibited biallelic mutations following double electroporation. For the CMAH gene, all blastocysts exhibited mutations (biallelic mutations ≥ 80%); however, double electroporation and ZP removal did not affect their mutation rates or efficiency. For the B4GALNT2 gene, double electroporation significantly increased total mutation rates in ZP-intact zygotes, whereas all blastocysts from ZP-free zygotes showed biallelic mutation. These findings suggest that double electroporation, particularly with ZP removal, may enhance gene-editing efficiency, reduce mosaicism and improve the success of genetic modifications. Full article
(This article belongs to the Special Issue Advances in Reproductive Biotechnologies in Swine)
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17 pages, 967 KB  
Review
Copy Number Variant Detection by NIPT: Biological Constraints and the Limits of Prenatal Genomic Inference
by Dorina Merhala, Béla Veszprémi and Réka Anna Vass
Genes 2026, 17(6), 636; https://doi.org/10.3390/genes17060636 - 30 May 2026
Viewed by 640
Abstract
Background: Non-invasive prenatal testing (NIPT) based on analysis of Cell-Free Fetal DNA has transformed screening for common aneuploidies and is increasingly extended to genome-wide detection of copy number variants (CNVs). However, CNV detection remains constrained by analytical limitations and biological signal complexity. Methods: [...] Read more.
Background: Non-invasive prenatal testing (NIPT) based on analysis of Cell-Free Fetal DNA has transformed screening for common aneuploidies and is increasingly extended to genome-wide detection of copy number variants (CNVs). However, CNV detection remains constrained by analytical limitations and biological signal complexity. Methods: This review evaluates the analytical validity, biological constraints, and clinical interpretation challenges of CNV detection by NIPT, framing it as a probabilistic genomic inference rather than a direct measure of fetal copy number. Results: Performance depends on sequencing depth, bin resolution, fetal fraction, guanine–cytosine correction, and reference modeling, leading to variable detection thresholds. The predominantly placental origin of cfDNA introduces discordance through Confined Placental Mosaicism, post-zygotic events, and clonal variation. Maternal CNVs, mosaicism, vanishing twin, and occult malignancy further complicate interpretation and may cause false positives. Clinical validity is heterogeneous, with positive predictive value dependent on CNV size, genomic context, and prevalence. Reporting practices remain inconsistent. Conclusions: CNV detection by NIPT is fundamentally limited by interpretation of a composite maternal–placental signal. Progress requires improved tissue-of-origin discrimination, multi-omic integration, and standardized reporting to ensure responsible clinical implementation. Full article
(This article belongs to the Section Genetic Diagnosis)
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13 pages, 1316 KB  
Article
Heterozygous Nonsense Mutation in the Nuclear Transport Factor KPNA7, a Maternal Factor Active in Embryonic Tissues, Causes Autosomal Dominant Otosclerosis
by Tammy Benteau, Nelly Abdelfatah, Anne Griffin, Cindy Penney, Pingzhao Hu, Susan G. Stanton, Guangju Zhai, Maxime Maheu, Curtis R. French and Terry-Lynn Young
Int. J. Mol. Sci. 2026, 27(11), 4985; https://doi.org/10.3390/ijms27114985 - 30 May 2026
Viewed by 597
Abstract
Otosclerosis is a common cause of conductive hearing loss thought to result from dysregulated bone remodeling in the embryonic tissues of the globuli interossei. Both familial and sporadic cases have been reported. To date, 10 published OTSC loci and four genes (FOXL1 [...] Read more.
Otosclerosis is a common cause of conductive hearing loss thought to result from dysregulated bone remodeling in the embryonic tissues of the globuli interossei. Both familial and sporadic cases have been reported. To date, 10 published OTSC loci and four genes (FOXL1 (OTSC11), SMARCA4 (OTSC12), MEPE, SERPINF1) have been identified in autosomal dominant families. Using a combined genetic and genomics approach in five affected siblings, we identified a nonsense mutation in Karyopherin subunit α7 (KPNA7, c.49C>T, p.R17X), the newest of the importin-α family of nuclear transporters. KPNA7 is a key maternal factor involved in the classical transport of NLS-containing cargo proteins, active during early embryonic cleavage events and zygotic genome activation. So far, 377 cargo proteins associated with KPNA7 have been identified. Recessive KPNA7 variants cause skeletal abnormalities, epilepsy, intellectual disabilities and preimplantation embryo arrest (PREMBA). A closer look at the OTSC genes reveals their involvement in endochondral ossification signaling pathways. We explore how KPNA7 haploinsufficiency in the embryonic tissues of the otic capsule may cause dysregulated bone remodeling. This study expands the phenotypic spectrum of KPNA7 and provides new insights into the pathobiology of otosclerosis. Full article
(This article belongs to the Special Issue Hearing Loss: Molecular Biological Insights, 2nd Edition)
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27 pages, 699 KB  
Review
When Fertilization Is Not Enough: Maternal-Zygotic Transition as a Determinant of Embryo Competence in IVF
by Charalampos Voros, Fotios Chatzinikolaou, Georgios Papadimas, Ali Can Gunes, Aristotelis-Marios Koulakmanidis, Ioannis Papapanagiotou, Athanasios Karpouzos, Diamantis Athanasiou, Kyriakos Bananis, Antonia Athanasiou, Aikaterini Athanasiou, Charalampos Tsimpoukelis, Maria Anastasia Daskalaki, Christina-Maria Trakatelli, Nikolaos Thomakos, Panagiotis Antsaklis, Dimitrios Loutradis and Georgios Daskalakis
Int. J. Mol. Sci. 2026, 27(11), 4787; https://doi.org/10.3390/ijms27114787 - 26 May 2026
Viewed by 572
Abstract
A significant concern with IVF is that many embryos fail to develop despite proper fertilization. This gap indicates that factors outside sperm-oocyte fusion influence developmental competency. The maternal-zygotic transition (MZT) is a crucial developmental phase during which control shifts from maternally inherited transcripts [...] Read more.
A significant concern with IVF is that many embryos fail to develop despite proper fertilization. This gap indicates that factors outside sperm-oocyte fusion influence developmental competency. The maternal-zygotic transition (MZT) is a crucial developmental phase during which control shifts from maternally inherited transcripts to activation of the embryonic genome. During the early stages following fertilization, the embryo depends only on maternal mRNA and proteins amassed throughout oogenesis. For successful development, these transcripts must be expeditiously removed with the concurrent genome activation. Any disruption, whether due to inadequate maternal mRNA degradation, aberrant translational control, or delayed genome activation, has been associated with premature developmental stoppage and diminished blastocyst formation. Principal regulators, such as BTG4, CPEB1, DAZL, and components of the translational machinery, govern this modification and seem to be affected by the quality of the oocyte and the age of the mother. Increasing evidence suggests that disruption of MZT may account for instances of suboptimal embryo development that conventional assessment techniques cannot elucidate. MZT offers a biological framework for assessing embryo competency beyond simple appearance. If scientists had a deeper understanding of this process, they might identify molecular markers and enhance the selection of embryos in IVF. Full article
(This article belongs to the Collection Advances in Cell and Molecular Biology)
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14 pages, 1509 KB  
Article
Overexpression of PeBBM2 and PeWUS Genes via Carbon Nanotube-Based DNA Delivery Enhances the Callus and Shoot Formation in Phyllostachys edulis
by Yiqian Ding, Ruotong Xu, Chao Xu, Xiaohong Zhou and Mingbing Zhou
Genes 2026, 17(6), 598; https://doi.org/10.3390/genes17060598 - 22 May 2026
Viewed by 571
Abstract
Background/Objectives: Phyllostachys edulis is the most widely distributed and economically important bamboo species in China. However, the genetic transformation in P. edulis is still limited by a long regeneration cycle and low regeneration and transformation efficiency. Carbon nanotube-based delivery systems in plants [...] Read more.
Background/Objectives: Phyllostachys edulis is the most widely distributed and economically important bamboo species in China. However, the genetic transformation in P. edulis is still limited by a long regeneration cycle and low regeneration and transformation efficiency. Carbon nanotube-based delivery systems in plants have the advantages of simplicity, rapidity and low cost. Moreover, morphogenetic regulators BBM (BABY BOOM) and WUS (WUSCHEL) play significant roles in plant regeneration. Methods: Here, immature zygotic embryos were used to induce P. edulis callus, and using single-walled carbon nanotubes (SWNTs)-based delivery technology, PeBBM2, PeWUS-DNA (with introns) and PeWUS-cDNA (without introns) were introduced to P. edulis callus either individually or in combination. Conclusions: The results showed that the 0.9–1.0 mm (long axis) embryos exhibited the lowest contamination rate and the highest induction efficiency. Moreover, the results indicated that the co-transformation of PeBBM2-PeWUS more effectively boosted the growth area of the callus. However, only the PeBBM2-overexpression callus could form shoots. Compared with the wild type, the PeBBM2-overexpression lines showed reduced expression of AGL15 and increased expression of IAA30 and YUC. In conclusion, these findings suggested that SWNTs-mediated DNA delivery is a potential strategy for the genetic transformation of P. edulis callus. Additionally, the findings indicate that the PeBBM2 and PeWUS genes can accelerate callus enlargement in P. edulis, whereas PeBBM2 might play a more important role in shoot formation. This study provides a basis for developing a genetic transformation system for plants based on SWNTs-mediated DNA delivery and morphogenetic regulators. Full article
(This article belongs to the Section Plant Genetics and Genomics)
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20 pages, 8307 KB  
Article
Effects of RNA Interference-Mediated Silencing of the Insulin-Like Androgenic Gland Hormone Gene on Growth and Gonad Development in the Swimming Crab (Portunus trituberculatus)
by Weiren Zhang, Ronghua Li, Chuan He, Changkao Mu, Chunlin Wang, Ce Shi and Weiwei Song
Animals 2026, 16(9), 1413; https://doi.org/10.3390/ani16091413 - 5 May 2026
Cited by 1 | Viewed by 744
Abstract
The insulin-like androgenic gland (IAG) gene is considered a crucial factor in the process of sexual differentiation in decapod crustaceans. In this study, we characterized the structural features and ontogenetic expression profile of the IAG gene in the swimming crab P. trituberculatus ( [...] Read more.
The insulin-like androgenic gland (IAG) gene is considered a crucial factor in the process of sexual differentiation in decapod crustaceans. In this study, we characterized the structural features and ontogenetic expression profile of the IAG gene in the swimming crab P. trituberculatus (Pt-IAG). To further elucidate its biological roles, we performed long-term RNA interference (RNAi) to evaluate the physiological impacts of sustained Pt-IAG suppression. Results showed that the gene structure of Pt-IAG is conserved with the characteristic B-C-A polypeptide arrangement that is representative of decapod IAGs. Transcripts of Pt-IAG were detectable as early as the zygote stage, which may imply its potential role during early-stage development. Although no completesex reversal was observed, continuous knockdown of Pt-IAG resulted in a decrease in body weight and a delay in gonad development in both sexes, underscoring its pleiotropic role in coordinating growth and maturation. Furthermore, the silencing of Pt-IAG led to a significant downregulation of insulin-like growth factor-binding protein (Pt-IGFBP), and a decrease in insulin-receptor (Pt-IR) expression was observed in males. Notably, the Pt-IR gene was not detected in female ovaries. These findings suggest that IAG may modulate male development through an insulin-like signaling axis; however, the absence of ovarian Pt-IR expression implies the potential existence of alternative regulatory pathways in females. Collectively, this study identifies a dual regulatory role of IAG in both growth and reproduction, providing a specific theoretical basis for developing sex-control and growth-optimization strategies in crab aquaculture. Full article
(This article belongs to the Section Aquatic Animals)
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70 pages, 3378 KB  
Review
Unravelling Multilayered RNA Modification Networks in Female Reproduction and Obstetric/Gynaecologic Disorders
by Yujie Kuai, Yanjun Yi, Xinyu Li, Zhuangping Wang, Yan Zheng, Yuxuan Li and Yulin Li
Biomolecules 2026, 16(4), 571; https://doi.org/10.3390/biom16040571 - 13 Apr 2026
Viewed by 1414
Abstract
Background/Objective: RNA modifications, including N6-methyladenosine (m6A), 5-methylcytosine (m5C), 7-methylguanosine (m7G), N1-methyladenosine (m1A), pseudouridine (Ψ), N4-acetylcytidine (ac4C), 5-methoxycarbonylmethyl-2-thiouridine (mcm5s2U) and adenosine-to-inosine (A-to-I) editing, constitute [...] Read more.
Background/Objective: RNA modifications, including N6-methyladenosine (m6A), 5-methylcytosine (m5C), 7-methylguanosine (m7G), N1-methyladenosine (m1A), pseudouridine (Ψ), N4-acetylcytidine (ac4C), 5-methoxycarbonylmethyl-2-thiouridine (mcm5s2U) and adenosine-to-inosine (A-to-I) editing, constitute a critical layer of post-transcriptional regulation that influences RNA stability, splicing, translation and degradation. This review aims to systematically summarise the current understanding of the molecular mechanisms and regulatory networks of RNA modifications in the female reproductive physiology and to evaluate their pathological implications in obstetric and gynaecologic disorders. Methods: We conducted a comprehensive literature review, synthesising findings from high-throughput sequencing studies, functional experiments and clinical investigations. The review integrates evidence across multiple RNA modification types, their regulatory enzymes (writers, erasers and readers) and their roles in physiological processes (germ cell development, oocyte maturation, embryogenesis and endometrial function) and pathological conditions (gynaecologic cancers, preeclampsia, endometriosis, polycystic ovary syndrome and premature ovarian insufficiency). Results: RNA modifications function as dynamic and reversible regulators that orchestrate key reproductive events, including primordial germ cell differentiation, oocyte meiosis, the maternal-to-zygotic transition, the establishment of uterine receptivity, and placental development. These modifications operate through coordinated writer–eraser–reader networks that fine tune transcripts’ stability, translation efficiency and RNA decay. The dysregulation of these epitranscriptomic networks is strongly implicated in the pathogenesis of gynaecologic malignancies (cervical, ovarian, endometrial cancers and choriocarcinoma), pregnancy-related disorders (preeclampsia, gestational diabetes mellitus and recurrent miscarriage), reproductive endocrine disorders (polycystic ovary syndrome and premature ovarian insufficiency) and benign gynaecological conditions (endometriosis and adenomyosis). Emerging evidence also reveals complex crosstalk among RNA modifications, such as cooperative interactions between m6A and m5C in translation regulation and antagonistic relationships between m6A and A-to-I editing. Conclusions: RNA modifications represent an essential and multifaceted regulatory layer in female reproduction, with broad implications for disease pathogenesis. Their unique reversibility and context-dependent functions offer promising opportunities for the development of diagnostic biomarkers and targeted therapeutic interventions. Future researchers should prioritise integrated multi-omics approaches, enhanced human-relevant models and clinical translation to fully realise the potential of epitranscriptomic medicine in reproductive health. Full article
(This article belongs to the Section Molecular Reproduction)
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18 pages, 8588 KB  
Article
Establishment of an Organogenesis-Based Regeneration System and Induction of Somatic Embryogenesis in Catalpa ovata
by Pingan Bao, Xingping Huo, Jingshuang Sun, Guanzheng Qu, Wenjun Ma, Junhui Wang and Ruiyang Hu
Plants 2026, 15(8), 1177; https://doi.org/10.3390/plants15081177 - 10 Apr 2026
Cited by 1 | Viewed by 883
Abstract
To overcome the seasonal constraints of explant availability and facilitate genetic improvement in Catalpa ovata, this study established a dual-pathway in vitro regeneration system (encompassing adventitious shoot organogenesis and somatic embryogenesis) using mature zygotic embryos. We systematically evaluated the synergistic effects of [...] Read more.
To overcome the seasonal constraints of explant availability and facilitate genetic improvement in Catalpa ovata, this study established a dual-pathway in vitro regeneration system (encompassing adventitious shoot organogenesis and somatic embryogenesis) using mature zygotic embryos. We systematically evaluated the synergistic effects of maternal genotypes, plant growth regulators (PGRs), basal media, and the histone deacetylase inhibitor Trichostatin A (TSA). Genotype screening revealed significant divergence in regenerative potential, with the half-sib family 32F17 exhibiting superior responsiveness (84.7% callus induction). A high cytokinin-to-auxin ratio (ZA3 medium) optimally drove direct shoot organogenesis. For adventitious shoot proliferation, the addition of TDZ significantly improved the multiplication coefficient (up to 2.99 on ZB4 medium), although a physiological trade-off with shoot elongation was observed. In parallel, the application of 10 µM TSA significantly enhanced somatic embryogenesis from embryogenic calli, effectively alleviating the inhibitory constraints of exogenous PGRs. For rhizogenesis, the DKW basal medium proved superior to half-strength MS, with the ZE3 treatment (0.1 mg·L−1 NAA + 0.1 mg·L−1 IBA) yielding the highest rooting frequency (69.6%) and robust root architecture. Notably, while somatic embryo conversion remained recalcitrant, plantlets derived exclusively from the adventitious shoot organogenesis pathway were successfully acclimatized ex vitro. These transplanted plantlets exhibited consistently high survival rates (83.1–84.4%) across all tested genotypes, effectively overcoming the initial genotype-dependent recalcitrance. Collectively, this optimized protocol provides a reliable technical platform for the large-scale clonal propagation and biotechnological breeding of C. ovata. Full article
(This article belongs to the Special Issue Sexual and Asexual Reproduction in Forest Plants—2nd Edition)
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17 pages, 21451 KB  
Article
Compensatory Serotonin Synthesis and Histone H3 Serotonylation in Preimplantation Embryos Exposed to Maternal Fluoxetine or Monoamine Oxidase Blockade
by Veronika S. Frolova and Denis A. Nikishin
J. Dev. Biol. 2026, 14(2), 15; https://doi.org/10.3390/jdb14020015 - 3 Apr 2026
Viewed by 2534
Abstract
Serotonin is a critical morphogen in early development, yet the mechanisms regulating its homeostasis in the preimplantation embryo remain unclear, particularly under conditions of maternal antidepressant exposure. Here, we investigated embryonic serotonergic autonomy using mouse models of pharmacological transport blockade (maternal fluoxetine treatment) [...] Read more.
Serotonin is a critical morphogen in early development, yet the mechanisms regulating its homeostasis in the preimplantation embryo remain unclear, particularly under conditions of maternal antidepressant exposure. Here, we investigated embryonic serotonergic autonomy using mouse models of pharmacological transport blockade (maternal fluoxetine treatment) and in vitro treatment with the monoamine oxidase inhibitor pargyline. We employed immunofluorescence, RT-qPCR, and live-cell imaging to assess metabolic flux, gene expression, and physiological health. We demonstrate that monoamine oxidase functions as a metabolic firewall, progressively maturing from zygote to blastocyst to degrade excess amines. Paradoxically, maternal serotonin transporter blockade triggered significant intracellular serotonin hyper-accumulation in blastocysts, associated with a trend toward a compensatory upregulation of the biosynthetic gene Ddc. While this serotonin overload did not compromise morphology, mitochondrial function, or pluripotency marker expression, it induced a robust epigenetic response. Excess serotonin promoted elevated H3Q5ser immunoreactivity in both nuclear and cytoplasmic compartments via a transglutaminase-dependent mechanism. These findings reveal that the preimplantation embryo possesses a resilient, autonomous serotonergic system capable of compensatory synthesis. However, environmental fluctuations are chemically recorded via transglutaminase-mediated serotonylation, representing an epigenetic mark that warrants further long-term study within the Developmental Origins of Health and Disease (DOHaD) framework. Full article
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17 pages, 5477 KB  
Article
Plant Regeneration via Somatic Embryogenesis in Juglans regia ‘Yunxin No. 14’
by Jinwang Qu, Xiurong Yang, Linhe Xiang, Bolin Wu, Junzan Huang, Chenyang Liang, Aoao Cui, Amenyogbe Mawuli Korsi, Haigang Zhang, Chu Wu, Liping Liu and Xinwu Xiong
Horticulturae 2026, 12(4), 437; https://doi.org/10.3390/horticulturae12040437 - 2 Apr 2026
Cited by 1 | Viewed by 1340
Abstract
The walnut cultivar ‘Yunxin No. 14’ is an early fruiting, high-yielding, and widely adaptable fruit tree with compact growth and superior nuts. Establishing a successful tissue culture system for this cultivar is crucial for its rapid clonal propagation and as a foundation for [...] Read more.
The walnut cultivar ‘Yunxin No. 14’ is an early fruiting, high-yielding, and widely adaptable fruit tree with compact growth and superior nuts. Establishing a successful tissue culture system for this cultivar is crucial for its rapid clonal propagation and as a foundation for future genetic transformation. Using young fruits as explants, 3% NaClO sterilization for 20 min effectively controlled contamination and browning. Somatic embryos induced from zygotic embryos cultured on DKW medium with 30 g·L−1 sucrose showed high proliferation and minimal browning. After a 4-day dehydration treatment using saturated NH4NO3, mature somatic embryos germinated rapidly on differentiation medium (DKW containing 1 mg·L−1 6-BA and 0.1 mg·L−1 IBA), reaching 90.0% germination. Optimal shoot multiplication was achieved on DKW medium supplemented with 2 mg·L−1 6-BA and 0.3 mg·L−1 IBA, yielding a proliferation rate of 91.1% and a proliferation index of 3.1. For rooting, shoots (~3 cm) treated with Clonex® rooting gel were transferred to a low-cost, sugar-free vermiculite medium with gaseous CO2 as the sole carbon source. Root initiation occurred within two weeks at a rate of 54.2%, significantly shortening the rooting phase. Rooted plantlets were acclimatized in a peat:perlite:vermiculite (2:2:1, v/v/v) mixture under high humidity for two weeks before outdoor transfer, achieving an 88.6% survival rate. This study provides a reliable protocol for the micropropagation of ‘Yunxin No. 14’ and a valuable reference for other difficult-to-root woody species. Full article
(This article belongs to the Special Issue Innovative Tissue Culture Techniques for Sustainable Horticulture)
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Article
Supplementing Coenzyme Q10 During the Vitrification and In Vitro Maturation of Dromedary Camel Oocytes Significantly Enhances Their Developmental Competence
by Karim A. Yaqout, Abou Bakr A. El-Wishy, Adel R. Moawad, Magdy R. Badr and Amr S. El-Shalofy
Animals 2026, 16(7), 1079; https://doi.org/10.3390/ani16071079 - 1 Apr 2026
Cited by 1 | Viewed by 606
Abstract
This study aimed to evaluate the impact of coenzyme Q10 (CoQ10) supplementation during in vitro maturation (IVM) and/or vitrification of immature dromedary camel oocytes on their subsequent in vitro developmental competence. Additionally, total antioxidant capacity (TAC) and malondialdehyde (MDA) concentrations were assessed in [...] Read more.
This study aimed to evaluate the impact of coenzyme Q10 (CoQ10) supplementation during in vitro maturation (IVM) and/or vitrification of immature dromedary camel oocytes on their subsequent in vitro developmental competence. Additionally, total antioxidant capacity (TAC) and malondialdehyde (MDA) concentrations were assessed in the IVM spent medium. In experiment 1, cumulus–oocyte complexes (COCs, n = 808) collected from slaughtered dromedary camel ovaries were cultured in IVM media supplemented with either 0, 25, 50, or 100 μM CoQ10 for 36 h. Matured oocytes were then fertilized in vitro with epididymal camel spermatozoa. Eighteen hours post-insemination (pi), presumptive zygotes were cultured in vitro for 7 days. In experiment 2, a total of 875 COCs were randomly allocated to one of four experimental groups, namely (a) Vit−/IVM− (control) group, where COCs were vitrified in vitrification solution (VS; 25% DMSO + 25% EG) and matured in IVM media without CoQ10 supplementation; (b) Vit+/IVM− group, in which COCs were vitrified in a VS supplemented with 50 µM CoQ10 and matured in IVM media without CoQ10 supplementation; (c) Vit−/IVM+ group, where COCs were vitrified in VS without CoQ10 supplementation and matured in IVM media supplemented with 50 µM CoQ10; and (d) Vit+/IVM+ group, where COCs were vitrified in VS and matured in IVM media, both supplemented with 50 µM CoQ10. Following vitrification and warming, oocyte viability was evaluated morphologically and by trypan blue staining. Viable oocytes were then matured, fertilized, and cultured in vitro. In experiment 3, TAC and MDA concentrations in the IVM spent media were analyzed. Results showed that 50 µM CoQ10 supplementation to IVM media enhanced cumulus expansion, nuclear maturation, cleavage, and blastocyst rates (experiment 1). Adding 50 µM CoQ10 to the VS enhanced (p ≤ 0.05) oocyte viability compared to those vitrified in CoQ10-free media. Cumulus cell expansion and nuclear maturation rates were higher (p ≤ 0.05) in Vit−/IVM+ than in Vit+/IVM+ and Vit−/IVM− groups. Furthermore, cleavage and blastocyst rates were the highest (p ≤ 0.05) in Vit−/IVM+ group (experiment 2). The concentrations of TCA were higher, and the concentrations of MDA were lower (p ≤ 0.05) in Vit−/IVM+ than in other groups (experiment 3). In conclusion, supplementation of CoQ10 in the maturation medium of vitrified–warmed immature dromedary camel oocytes may enhance their in vitro developmental competence. Full article
(This article belongs to the Special Issue Gamete and Stem Cell Vitrification in Animals)
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